Head-on collisions of binary white dwarf--neutron stars: Simulations in full general relativity
Vasileios Paschalidis, Zachariah Etienne, Yuk Tung Liu, Stuart L., Shapiro

TL;DR
This study uses full general relativity simulations with scaled-down models to analyze head-on collisions of white dwarf and neutron star binaries, predicting the formation of hot, stable remnants resembling Thorne-Zytkow objects.
Contribution
First to simulate head-on WDNS collisions in full GR using pseudo-WDs, revealing outcomes without prompt black hole formation and characterizing remnant structures.
Findings
14%-18% of mass escapes to infinity
Remnants are hot, spherical, and resemble Thorne-Zytkow objects
No prompt collapse to black hole occurs
Abstract
We simulate head-on collisions from rest at large separation of binary white dwarf -- neutron stars (WDNSs) in full general relativity. Our study serves as a prelude to our analysis of the circular binary WDNS problem. We focus on compact binaries whose total mass exceeds the maximum mass that a cold degenerate star can support, and our goal is to determine the fate of such systems. A fully general relativistic hydrodynamic computation of a realistic WDNS head-on collision is prohibitive due to the large range of dynamical time scales and length scales involved. For this reason, we construct an equation of state (EOS) which captures the main physical features of NSs while, at the same time, scales down the size of WDs. We call these scaled-down WD models "pseudo-WDs (pWDs)". Using pWDs, we can study these systems via a sequence of simulations where the size of the pWD gradually…
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Taxonomy
TopicsPulsars and Gravitational Waves Research · Astrophysical Phenomena and Observations · Gamma-ray bursts and supernovae
